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Reducing demographic bias in biomedical machine learning for cancer detection using cfDNA methylation

Abstract Background Machine learning models in biomedical research are often hindered by demographic imbalances in clinical datasets, leading to biased predictions that disadvantage minority populations. Existing bias-correction methods face limitations in handling the heterogeneity of biomedical da...

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Hlavní autoři: Shuo Li, Weihua Zeng, Wenyuan Li, Chun-Chi Liu, Yonggang Zhou, Xiaohui Ni, Mary L. Stackpole, Angela H. Yeh, Andrew Melehy, David S. Lu, Steven S. Raman, William Hsu, Lopa Mishra, Kirti Shetty, Benjamin Tran, Megumi Yokomizo, Preeti Ahuja, Yazhen Zhu, Hsian-Rong Tseng, Denise R. Aberle, Vatche G. Agopian, Steven-Huy B. Han, Samuel W. French, Steven M. Dubinett, Xianghong Jasmine Zhou, Wing Hung Wong
Médium: Artigo
Jazyk:Inglês
Vydáno: BMC 2026-02-01
Edice:Genome Biology
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On-line přístup:https://doi.org/10.1186/s13059-026-04006-0
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